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Hello FLAML team,
I was trying to compare the performance between FLAML and Optuna in deep learning params tuning.
Starting with a basic CNN.
This is my Optuna code, which works. Params need to tune can be put in the objective function:
Then I was trying to figure out how to use FLAML to tune the same CNN model. I have checked the notebook here: https://github.com/microsoft/FLAML/blob/main/notebook/flaml_finetune_transformer.ipynb
And mainly defined
train_cnn()
that's similar to yourtrain_distilbert()
in the notebook:I guess the
**config
is the search space? And here's the code tried to tune the model:But this doesn't work.
If FLAML also works for self-built neural networks, is that possible for you guys to add a simple notebook example for that, so that users can follow? (If you are able to tell what's wrong in my code here, that's even better :) )
I feel pre-trained model from transformer is harder to understand since I'm not familiar with transformer and guess many other users can be similar :)
Thanks a bunch!!
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